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February 28, 2026The Journal of Chemical Physics0 citations

Revealing the microhydration mechanisms of α -hydroxy carboxylic acids: Identification of large-amplitude torsional and librational motion

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MBM. Øie BischoffTechnical University of DenmarkLBLin Bigom-EriksenTechnical University of DenmarkDMD. MihrinTechnical University of Denmark

Key Points

  • The research aims to understand the microhydration mechanisms and self-aggregation processes of α-hydroxy carboxylic acids.
  • Performed low-temperature mid- and far-infrared cluster spectroscopy at 4 K.
  • Used theoretical conformational sampling refined with high-level electronic structure theory.
  • Utilized isotopically enriched samples for spectral analysis.
  • Identified specific vibrational fundamentals related to large-amplitude motions in hydrates.
  • Validated theoretical predictions of stable six-membered cyclic hydrogen-bonded configurations.
  • Demonstrated the role of intramolecular and intermolecular motions in microhydration processes.

Abstract

The molecular recognition mechanisms associated with the self-aggregation and microhydration processes of two different bifunctional α-hydroxy carboxylic acids, prototypical glycolic acid CH2OHCOOH and the doubly methylated variant 2-hydroxyisobutyric acid (CH3)2C(OH)COOH, have been investigated by low-temperature mid- and far-infrared cluster spectroscopy of doped low polarizability neon matrices at 4 K, complemented by systematic theoretical conformational sampling refined with high-level electronic structure theory at the DLPNO-CCSD(T)/aug-cc-pV5Z level. Several mid-infrared perturbed vibrational fundamentals together with specific far-infrared vibrational fundamentals associated with large-amplitude, anharmonic hindered intramolecular torsional and intermolecular librational (hindered overall rotational) motion of the α-hydroxy carboxylic acid monohydrates are unambiguously assigned based on a combination of mixing ratio dependencies, thermal annealing, and the use of isotopically enriched H218O and D2O samples. These direct experimental spectroscopic probes of the formed intermolecular hydrogen bond motifs validate high-level quantum chemical predictions that the global intermolecular potential energy minima configurations involve six-membered cyclic cooperatively hydrogen-bonded C=O⋯H-Owater⋯H-Oacid "insertion" sequences in the monohydrate species of both α-hydroxy carboxylic acid analogues.

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Cite This Study

Bischoff et al. (2026) studied this question.

synapsesocial.com/papers/69a286850a974eb0d3c017e1https://doi.org/10.1063/5.0315254
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